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有限温度下金纳米团簇的(亚)稳定性及核壳动力学

(Meta-)stability and Core-Shell Dynamics of Gold Nanoclusters at Finite Temperature.

作者信息

Guedes-Sobrinho Diego, Wang Weiqi, Hamilton Ian P, Da Silva Juarez L F, Ghiringhelli Luca M

机构信息

São Carlos Institute of Chemistry , University of São Paulo , PO Box 780, 13560-970 São Carlos , São Paulo , Brazil.

Fritz-Haber-Institut der Max-Planck-Gesellschaft , 14195 Berlin-Dahlem , Germany.

出版信息

J Phys Chem Lett. 2019 Feb 7;10(3):685-692. doi: 10.1021/acs.jpclett.8b03397. Epub 2019 Jan 30.

Abstract

Gold nanoclusters have been the focus of numerous computational studies, but an atomistic understanding of their structural and dynamical properties at finite temperature is far from satisfactory. To address this deficiency, we investigate gold nanoclusters via ab initio molecular dynamics, in a range of sizes where a core-shell morphology is observed. We analyze their structure and dynamics using state-of-the-art techniques, including unsupervised machine-learning nonlinear dimensionality reduction (sketch-map) for describing the similarities and differences among the range of sampled configurations. In the examined temperature range between 300 and 600 K, we find that whereas the gold nanoclusters exhibit continuous structural rearrangement, they are not amorphous. Instead, they clearly show persistent motifs: a cationic core of 1-5 atoms is loosely bound to a shell which typically displays a substructure resulting from the competition between locally spherical versus planar fragments. Besides illuminating the properties of core-shell gold nanoclusters, the present study proposes a set of useful tools for understanding their nature in operando.

摘要

金纳米团簇一直是众多计算研究的焦点,但对于它们在有限温度下的结构和动力学性质的原子层面理解仍远不能令人满意。为了弥补这一不足,我们通过从头算分子动力学研究了一系列呈现核壳形态的不同尺寸的金纳米团簇。我们使用最先进的技术分析它们的结构和动力学,包括用于描述一系列采样构型之间异同的无监督机器学习非线性降维(草图映射)。在300至600 K的考察温度范围内,我们发现尽管金纳米团簇表现出连续的结构重排,但它们并非无定形。相反,它们清晰地显示出持久的结构基序:一个由1至5个原子组成的阳离子核松散地结合在一个壳上,该壳通常呈现出由局部球形片段与平面片段之间的竞争所导致的子结构。除了阐明核壳金纳米团簇的性质外,本研究还提出了一套用于在实际操作中理解其本质的有用工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/564e/6372262/7c8a054fce54/jz-2018-03397n_0001.jpg

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